Research on Production Operation System of Sucker Rod Pumping Units

Authors

  • Shaonan Wang
  • Yang Qiao
  • Jianjian Fan
  • Qingfeng Zhou

DOI:

https://doi.org/10.54097/6sx39d55

Keywords:

Dynamic Liquid Level; Pump Efficiency; Submergence Depth; Intermittent Oil Production.

Abstract

Oil is the most important raw material in modern industry, and its extraction mainly relies on natural flow and artificial lifting. Sucker rod pumping is currently the most widely used method of artificial lifting for mechanical oil extraction, accounting for about 60% to 70% of all methods. This paper deeply explores the theoretical methods involved in the production operation process of sucker rod pumping units. From the perspective of sucker rod pumping unit production operation, a literature review is conducted on the flow patterns in the wellbore, pump efficiency analysis, and intermittent oil extraction systems, clarifying the optimization objectives of liquid production and system efficiency, and sorting out from the aspects of dynamic liquid level, pump efficiency, reasonable submergence depth, and intermittent operation systems. Through in-depth analysis of these key areas, a solid methodological foundation is provided for the future design and development of sucker rod pumping unit production operation systems.

Downloads

Download data is not yet available.

References

[1] Liu Jingkai. A Brief Discussion on the Soft Measurement of Dynamic Liquid Levels in Oilfields [J]. China New Technology and Products, 2013(20): 2.

[2] Kong Yue, Zhang Rui Chao, Zhang Zhi Hua. Research on the Measurement Method of Dynamic Liquid Level in Pumping Wells [J]. China Petroleum and Chemical Standardization and Quality, 2018, 38(15): 33-35.

[3] Chen Dianfang, Han Xiangli, Yang Jing. Discussion on the Method of Oil Well Liquid Level Detection [J]. Oil and Gas Well Testing, 2008(02): 60-61+78.

[4] Xia Feng, Chen Xisong, Qian Shuai Kang, et al. Research on the Intelligent Identification Method of Oil Well Supply Capacity Based on the Dynamometer Chart [J]. Petrochemical Applications, 2022, 41(02): 93-98.

[5] Liu Xiangwu. Research Method for Calculating the Depth of Dynamic Liquid Level Using the Dynamometer Chart [J]. China Petroleum and Chemical Standardization and Quality, 2012, 33(16): 90.

[6] Jiang Dong. Research and Application of Electric Dynamometer Chart Testing Dynamic Liquid Level Technology in Pumping Wells [J]. Petroleum Geology and Engineering, 2019, 33(03): 115-118.

[7] Zhang Shengli, Luo Yi, Wu Zanmei, et al. Modified Algorithm for Calculating Dynamic Liquid Level in Pumping Wells Using the Dynamometer Chart Method [J]. Petroleum Drilling Techniques, 2011, 33(06): 122-124.

[8] Qu Baolong, Ma Weiguo. Calculation Method and Influence Analysis of Rod Pump Fullness [J]. Petroleum Machinery, 2018, 46(11): 79-84.

[9] Fu Yarong, Liu Wei, Sun Mojiu, et al. Determination Method of Influencing Factors of Pump Efficiency in Pumping Wells [J]. Energy Conservation in Petroleum and Petrochemical Industry, 2022, 12(12): 46-50.

[10] Wu Qiong, Han Ling, Wang Yan, et al. Analysis of Factors Affecting Pump Efficiency in Xinli Oilfield and Determination of Reasonable Pump Setting [J]. Special Oil and Gas Reservoirs, 2005, (06): 82-84+108.

[11] Lu Jianping, Liu Wenye, Dong Zhidong, et al. Discussion on the Relationship between Reasonable Submergence Depth and Pump Efficiency of Pumping Wells [J]. Henan Petroleum, 2002, (02): 43-44+7-8.

[12] Zhou Na, Teng Zhaozheng, Xiao Ping. Optimization Analysis of Submergence Depth for Pumping Wells in Shengtuo Oilfield [J]. China Energy, 2014, 19(12): 56-58.

[13] Tan Duohong. Determination of Reasonable Submergence Depth for Pumping Wells [J]. Journal of Petroleum and Natural Gas, 2007, (01): 147-148.

[14] Liu Bin. Fault Diagnosis of Pumping System under the Background of Big Data [D]. Xi'an Petroleum University, 2021. DOI: 10.27400/d.cnki.gxasc.2021.000330.

[15] Li Jiexun, Jia Hekun, Song Yang, et al. Current Status and Development Trend of Oil Well Production Measurement Technology [J]. Acta Petrolei Sinica, 2017, 38(12): 1434-1440.

[16] Dong Shimin, Feng Nana. Computer Simulation Model of System Efficiency for Pumping Wells [J]. Journal of System Simulation, 2007(08): 1853-1856.

[17] Zhang Maiyun, Bai Xuedong, Yao Yanfang, et al. Determination Method of Work System for Intermittent Production of Low-Yield Oil Wells [J]. Drilling and Production Technology, 2005, (03): 68-70+118.

[18] Sun Dong, Cui Xiaolin, Qi Guangfeng, et al. Optimization Method for Intermittent Production of Oil Wells Based on Continuous Monitoring of Dynamic Liquid Level [J]. Energy Conservation in Petroleum and Petrochemical Industry, 2012, 2(08): 1-2+8.

[19] Guo Liying. Research and Application of Reasonable Intermittent Oil Extraction Technology in Low-Yield and Low-Permeability Oilfields [J]. Chemical Engineering and Equipment, 2014, (01): 81-84.

[20] Jing Quanyu. Rationality Analysis of Intermittent Mining Work System for Oil Wells in Low Permeability Reservoirs [J]. Chemical Engineering and Equipment, 2021, (03): 140+133.

Downloads

Published

14-09-2024

Issue

Section

Articles

How to Cite

Wang, S., Qiao, Y., Fan, J., & Zhou, Q. (2024). Research on Production Operation System of Sucker Rod Pumping Units. Academic Journal of Science and Technology, 12(2), 260-264. https://doi.org/10.54097/6sx39d55